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A class of non-equilibrium states and the black hole interior

We consider a class of non-equilibrium pure states, which are generally present in an isolated quantum statistical system. These are states of the form $|\Psi\rangle=e^{-{\beta H \over 2}} U e^{{\beta H \over 2}} |\Psi_0\rangle$, where $U$ is a unitary made out of simple operators and $|\Psi_0\rangl...

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Autor principal: Papadodimas, Kyriakos
Lenguaje:eng
Publicado: 2017
Materias:
Acceso en línea:http://cds.cern.ch/record/2285558
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author Papadodimas, Kyriakos
author_facet Papadodimas, Kyriakos
author_sort Papadodimas, Kyriakos
collection CERN
description We consider a class of non-equilibrium pure states, which are generally present in an isolated quantum statistical system. These are states of the form $|\Psi\rangle=e^{-{\beta H \over 2}} U e^{{\beta H \over 2}} |\Psi_0\rangle$, where $U$ is a unitary made out of simple operators and $|\Psi_0\rangle$ is a typical equilibrium pure state with sharply peaked energy. We argue that in a system with a holographic dual these states have a natural interpretation as an AdS black hole with transient excitations behind the horizon. We explore the interpretation of these states as pure states undergoing a time-dependent spontaneous fluctuation out of equilibrium. While these states are atypical and the microscopic phases of the wavefunction are correlated with the matrix elements of simple operators, the states are partly disguised as equilibrium states due to cancellations between contributions from different coarse-grained energy bins. These cancellations are guaranteed by the KMS condition of the underlying equilibrium state $|\Psi_0\rangle$. However, in correlators which include the Hamiltonian $H$ these cancellations are spoiled and the non-equilibrium nature of the state $|\Psi\rangle$ can be detected. We discuss connections with the proposal that local observables behind the horizon are realized as state-dependent operators. The states studied in this paper may be useful for implementing an analogue of the "traversable wormhole" protocol for a 1-sided black hole, which could potentially allow us to extract the excitation from behind the horizon. We include some pedagogical background material.
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spelling cern-22855582023-02-08T03:40:56Zhttp://cds.cern.ch/record/2285558engPapadodimas, KyriakosA class of non-equilibrium states and the black hole interiorhep-thParticle Physics - TheoryWe consider a class of non-equilibrium pure states, which are generally present in an isolated quantum statistical system. These are states of the form $|\Psi\rangle=e^{-{\beta H \over 2}} U e^{{\beta H \over 2}} |\Psi_0\rangle$, where $U$ is a unitary made out of simple operators and $|\Psi_0\rangle$ is a typical equilibrium pure state with sharply peaked energy. We argue that in a system with a holographic dual these states have a natural interpretation as an AdS black hole with transient excitations behind the horizon. We explore the interpretation of these states as pure states undergoing a time-dependent spontaneous fluctuation out of equilibrium. While these states are atypical and the microscopic phases of the wavefunction are correlated with the matrix elements of simple operators, the states are partly disguised as equilibrium states due to cancellations between contributions from different coarse-grained energy bins. These cancellations are guaranteed by the KMS condition of the underlying equilibrium state $|\Psi_0\rangle$. However, in correlators which include the Hamiltonian $H$ these cancellations are spoiled and the non-equilibrium nature of the state $|\Psi\rangle$ can be detected. We discuss connections with the proposal that local observables behind the horizon are realized as state-dependent operators. The states studied in this paper may be useful for implementing an analogue of the "traversable wormhole" protocol for a 1-sided black hole, which could potentially allow us to extract the excitation from behind the horizon. We include some pedagogical background material.arXiv:1708.06328CERN-TH-2017-160oai:cds.cern.ch:22855582017
spellingShingle hep-th
Particle Physics - Theory
Papadodimas, Kyriakos
A class of non-equilibrium states and the black hole interior
title A class of non-equilibrium states and the black hole interior
title_full A class of non-equilibrium states and the black hole interior
title_fullStr A class of non-equilibrium states and the black hole interior
title_full_unstemmed A class of non-equilibrium states and the black hole interior
title_short A class of non-equilibrium states and the black hole interior
title_sort class of non-equilibrium states and the black hole interior
topic hep-th
Particle Physics - Theory
url http://cds.cern.ch/record/2285558
work_keys_str_mv AT papadodimaskyriakos aclassofnonequilibriumstatesandtheblackholeinterior
AT papadodimaskyriakos classofnonequilibriumstatesandtheblackholeinterior